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Updated: Feb 9, 2026

A Neonatal Imaging Model of Gram-Negative Bacterial Sepsis
Published on: August 12, 2020
Macrophage P2X4 receptors augment bacterial killing and protect against sepsis
Balázs Csóka1, Zoltán H Németh1,2,3, Ildikó Szabó4
1Department of Anesthesiology, Columbia University, New York, New York, USA.
Abstract:
The macrophage is a major phagocytic cell type, and its impaired function is a primary cause of immune paralysis, organ injury, and death in sepsis. An incomplete understanding of the endogenous molecules that regulate macrophage bactericidal activity is a major barrier for developing effective therapies for sepsis. Using an in vitro killing assay, we report here that the endogenous purine ATP augments the killing of sepsis-causing bacteria by macrophages through P2X4 receptors (P2X4Rs). Using newly developed transgenic mice expressing a bioluminescent ATP probe on the cell surface, we found that extracellular ATP levels increase during sepsis, indicating that ATP may contribute to bacterial killing in vivo. Studies with P2X4R-deficient mice subjected to sepsis confirm the role of extracellular ATP acting on P2X4Rs in killing bacteria and protecting against organ injury and death. Results with adoptive transfer of macrophages, myeloid-specific P2X4R-deficient mice, and P2rx4 tdTomato reporter mice indicate that macrophages are essential for the antibacterial, antiinflammatory, and organ protective effects of P2X4Rs in sepsis. Pharmacological targeting of P2X4Rs with the allosteric activator ivermectin protects against bacterial dissemination and mortality in sepsis. We propose that P2X4Rs represent a promising target for drug development to control bacterial growth in sepsis and other infections.
Insights
Extracellular ATP enhances macrophage bacterial killing via P2X4 receptors (P2X4Rs), offering a new sepsis therapy target. Targeting P2X4Rs with ivermectin protects against sepsis mortality and bacterial spread.
Area of Science:
- Immunology
- Cell Biology
- Pharmacology
Background:
- Macrophage dysfunction in sepsis leads to immune paralysis, organ damage, and death.
- Understanding molecules regulating macrophage bactericidal activity is crucial for sepsis treatment.
Purpose of the Study:
- To investigate the role of endogenous molecules in macrophage bactericidal activity during sepsis.
- To identify therapeutic targets for sepsis by examining ATP and P2X4 receptor (P2X4R) involvement.
Main Methods:
- In vitro macrophage killing assays.
- Transgenic mice with bioluminescent ATP probes and P2X4R-deficient mice.
- Adoptive transfer experiments and myeloid-specific P2X4R knockout models.
Main Results:
- Extracellular ATP augments bacterial killing by macrophages through P2X4Rs.
- Elevated extracellular ATP levels were observed in sepsis models.
- P2X4R deficiency exacerbates sepsis outcomes, while P2X4R activation protects against mortality and organ injury.
- Macrophages are critical mediators of P2X4R-driven sepsis protection.
Conclusions:
- Extracellular ATP signaling via P2X4Rs is a key mechanism for macrophage-mediated bacterial clearance in sepsis.
- Targeting P2X4Rs, potentially with ivermectin, represents a promising therapeutic strategy for sepsis and other infections.
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